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Sub-wavelength surface structuring on stainless steel by femtosecond laser pulses

机译:飞秒激光脉冲在不锈钢上进行亚波长表面结构化

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In this research, the formation of laser-induced periodic surface structures (LIPSS) on the stainless steel surface by femtosecond laser pulses was investigated under static irradiation and line-scanning experiment. In the experiment, we used a commercial amplified Ti:sapphire laser system that generated 164 fs laser pulses with a maximum pulse energy (Ep) of 1 mJ at a 1 kHz repetition rate and with a central wavelength λ = 780 nm. To obtain a fine periodic ordering of surface nanostructures, the laser beam, through a 0.2 mm pinhole aperture positioned near the 5× objective lens, was focused onto the sample. The samples were mounted on an XYZ-translation stage and irradiated in static and line-scanning experiment. The morphology of the induced periodic structure was examined by scanning electron microscopy. The surface profile was measured by atomic force microscopy. High-spatial-frequency LIPSS (HSFL) with a period of 255 ±21 nm were obtained over the entire ablated area. HSFL were found to form on low-spatial-frequency LIPSS (LSFL). From our results we elucidated the relationship between the formation of LSFL and HSFL to obtain an enhanced understanding of the mechanism of HSFL formation by femtosecond laser pulses. A large number of applications have been proposed, such as improvement of the optical properties of the surface, new cutting tool development and hard diamond. More applications could be found as the spatial period of HSFL on different materials comes into sub-100 nm.
机译:在这项研究中,在静态辐射和线扫描实验下,研究了飞秒激光脉冲在不锈钢表面形成激光诱导的周期性表面结构(LIPSS)。在实验中,我们使用了商业化的放大的Ti:蓝宝石激光系统,该系统以164 kHz的频率产生了164 fs激光脉冲,最大脉冲能量(Ep)为1 mJ,重复频率为1 kHz,中心波长为λ= 780 nm。为了获得表面纳米结构的精细周期性排序,将激光束通过位于5倍物镜附近的0.2毫米针孔孔径聚焦到样品上。将样品安装在XYZ平移台上,并在静态和线扫描实验中进行辐照。通过扫描电子显微镜检查诱导的周期性结构的形态。通过原子力显微镜测量表面轮廓。在整个消融区域获得了255±21 nm的周期的高空间频率LIPSS(HSFL)。发现HSFL在低空间LIPSS(LSFL)上形成。从我们的结果中,我们阐明了LSFL和HSFL的形成之间的关系,以增强对飞秒激光脉冲形成HSFL的机理的了解。已经提出了许多应用,例如改善表面的光学性能,新的切削工具开发和硬质金刚石。随着不同材料上HSFL的空间周期小于100 nm,可以发现更多的应用。

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